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Cold anammox process and reduced graphene oxide - Varieties of effects during long-term interaction

机译:冷厌氧氨氧化工艺和减少的氧化石墨烯-长期相互作用期间的各种影响

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Because of its energy efficiency, the anaerobic ammonium oxidation (anammox) process has been recognized as the most promising biological nitrogen removal process, but its implementation in mainstream wastewater treatment plants is limited by its relatively high optimal temperature (30 degrees C). Recently, it was shown that during short-term batch experiments, reduced graphene oxide (RGO) displayed accelerated reaction activity at low temperatures (10-15 degrees C). In this study, the long-term effects of RGO on the low-temperature anammox process in a sequencing batch reactor (SBR), are studied for the first time, including different methods of interaction. The results presented here show that RGO can stimulate anammox activity up to 17% through two factors: bacterial growth stimulation, which was especially significant at higher temperatures (15 degrees C), and an increase of the anammox reaction rate, which occurred only below 15 degrees C. The bacterial community structure was not influenced by addition of RGO. Moreover, after incubation in an anammox bioreactor, RGO showed signs of degradation and chemical changes as evidenced by the presence of oxygen and calcium on its surface. According to the literature and the obtained results, it is proposed that RGO is oxidized and oxygen is reduced by the organic mediator that is involved in the enzymatic reactions. However, activated sludge is a very complex structure created by numerous, undefined microorganisms, which makes it difficult to determine the exact oxidation mechanism. (C) 2019 Elsevier Ltd. All rights reserved.
机译:由于其能源效率,厌氧铵氧化(anammox)工艺已被认为是最有前途的生物脱氮工艺,但是其在主流废水处理厂中的实施受到其相对较高的最佳温度(30摄氏度)的限制。最近,研究表明,在短期批量实验中,还原型氧化石墨烯(RGO)在低温(10-15摄氏度)下显示出加速的反应活性。在这项研究中,首次研究了RGO对测序间歇反应器(SBR)中低温厌氧氨氧化过程的长期影响,包括不同的相互作用方法。此处显示的结果表明,RGO可以通过两个因素刺激高达70%的厌氧氨氧化活性:细菌生长刺激(在较高温度(> 15摄氏度)下尤为明显)和厌氧氨氧化反应速率的增加(仅在以下温度下才发生) 15摄氏度。细菌群落结构不受添加RGO的影响。此外,在厌氧氨氧化生物反应器中孵育后,RGO表现出降解和化学变化的迹象,其表面上存在氧气和钙便证明了这一点。根据文献和获得的结果,提出了RGO被酶促反应所涉及的有机介体氧化并还原了氧。然而,活性污泥是由许多不确定的微生物产生的非常复杂的结构,这使得难以确定确切的氧化机理。 (C)2019 Elsevier Ltd.保留所有权利。

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